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Elucidating the Impact of Processing Parameters of Additive Manufactured Materials Using Microscale Tensile Samples

机译:使用微观拉伸样品阐明添加制造材料的加工参数的影响

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Additive manufacturing (AM) using laser-based powder bed fusion (PBF) techniques results in a highly unique processing of material with complex, location-dependent thermal histories. The resulting microstructure and mechanical properties are highly dependent on the associated AM processing parameters and part geometry. To understand the property variation related to varying thermal profiles, a novel microscale testing technique was used to derive mechanical properties allowing for location- and orientation-specific characterization of the material that otherwise is masked with standard macroscale testing methods. Microtensile specimens with a footprint of 1 mm × 3 mm and a gauge section of 250 μm x 250 μm were extracted from part geometries designed to impart various thermal histories. The effects of build direction, sample orientation, and AM processing parameters also were studied. The utility of small-scale testing enabled characterization of properties of thin structural walls not measurable with conventional samples. A link between sample strength and build geometry, such as angle and wall thickness, was observed. The results are crucial to accurately design the AM process and to provide insight into the local mechanical performance of AM components.
机译:添加剂制造(AM)采用基于激光的粉末床融合(PBF)技术导致具有复杂的位置依赖性热历史的材料的高度独特的材料。所得到的微结构和机械性能高度依赖于相关的AM处理参数和部分几何形状。为了理解与不同热谱相关的性能变化,使用一种新型的微观测试技术来导出机械性能,允许用标准宏观测试方法掩盖否则掩盖的材料的位置和定向特异性。从设计成赋予各种热历史的部分几何形状,提取具有1mm×3mm的占地面积和250μm×250μm的占地面积的显微调制标本。研究了构建方向,样品取向和AM处理参数的影响。小规模测试的效用使得表征薄结构壁的特性,不可用于传统样品。观察样本强度和构建几何形状之间的链接,例如角度和壁厚。结果对于准确设计AM工艺至关重要,并提供对AM组分的局部机械性能的洞察。

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